A novel role for Gab1 and SHP2 in epidermal growth factor-induced Ras activation

Alexandra Montagner1, Armelle Yart, Marie Dance

  • 1Département Lipoprotéines et Médiateurs Lipidiques, INSERM U563, Hôpital Purpan, 31300 Toulouse, France.

Insights

The SHP2 phosphatase down-regulates Gab1 phosphorylation, releasing Ras-GAP and promoting Ras activation. This study identifies a key Gab1 site mediating Ras-GAP binding, crucial for SHP2

Area of Science:

  • Molecular Biology
  • Cell Signaling
  • Oncology

Background:

  • SHP2 (PTPN11) is a tyrosine phosphatase involved in cell signaling pathways.
  • SHP2 dephosphorylates Gab1, affecting PI3K and Ras activation.
  • The precise role of SHP2 in EGF-induced Ras activation via Gab1 was unclear.

Purpose of the Study:

  • To elucidate the mechanism by which the Gab1/SHP2 pathway positively regulates EGF-induced Ras activation.
  • To identify the specific Gab1 phosphotyrosine sites targeted by SHP2 that mediate Ras-GAP interaction.
  • To confirm Ras-GAP as a downstream effector of SHP2 in this pathway.

Main Methods:

  • Substrate trapping experiments to identify SHP2-dephosphorylated Gab1 sites.
  • Site-directed mutagenesis of Gab1 YXXP motifs.
  • Co-immunoprecipitation to assess Gab1-RasGAP interaction.
  • Western blotting to analyze Ras and RasGAP activation and localization.
  • Experiments in SHP2-deficient fibroblasts.

Main Results:

  • SHP2 dephosphorylates Gab1 at YXXP motifs in its central region, facilitating Ras activation.
  • Gab1 YXXP motifs serve as docking sites for Ras-GAP.
  • SHP2 inactivation leads to increased Gab1-RasGAP binding and impaired Ras activation.
  • Mutation of Gab1 Tyr(317) disrupts RasGAP binding and rescues Ras activation upon SHP2 inactivation.
  • Gab1 interacts with RasGAP SH2 domains when SHP2 is inactive.

Conclusions:

  • SHP2 dephosphorylates Gab1 at Tyr(317) to disrupt RasGAP binding, thereby promoting Ras activation.
  • Gab1 acts as a scaffold, with SHP2 regulating its interaction with the negative Ras regulator RasGAP.
  • This mechanism highlights a critical role for SHP2 in sustaining Ras signaling, relevant to cancer.

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